The present disclosure provides a water play feature that creates a laminar water jet stream, or multiple laminar water jet streams for interaction and display in a water park.
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1. A water play feature comprising:
a water supply source;
at least one laminar flow water jet configured to provide a laminar flow water stream for interaction by a participant in a water park;
each laminar flow water jet comprising an outer housing with a water inlet at a first longitudinal end:
the outer housing of each laminar flow water jet having an inlet end open region at the first longitudinal end adjacent the water inlet;
the outer housing of each laminar flow water jet containing a plurality of longitudinal tubes downstream of the inlet end open region and fluidly coupled thereto;
each longitudinal tube extending from the inlet end open region at the first longitudinal end towards a second longitudinal end longitudinally opposed to the first longitudinal end;
wherein the plurality of longitudinal tubes radially fill the outer housing;
the outer housing of each laminar flow water jet having an outlet end open region at the second longitudinal end;
a nozzle fluidly coupled to the second longitudinal end of the outer housing downstream of the outlet end open region;
wherein the inlet end open region comprises a radially outward outer filter chamber fluidly coupled to the water source via an outer inlet;
wherein the inlet end open region comprises a radially inward inner filter chamber radially surrounded by the radially outward outer filter chamber, the radially inward inner filter chamber fluidly coupled to the water source via an inner inlet; and
wherein the flow of water entering the radially outward outer filter chamber is controlled independent of the flow of water entering the radially inward inner filter chamber, and
a valve positioned between the water supply source and the laminar flow water jet.
2. The water play feature of
3. The water play feature of
4. The water play feature of
5. The water play feature of
6. The water play feature of
7. The water play feature of
8. The water play feature of
9. The water play feature of
a conic end wall at an outlet end of the outlet end open region;
the nozzle having an inlet extending longitudinally into the region radially bounded by the conic end wall; and
wherein the nozzle inlet is longitudinally positionable.
10. The water play feature of
an adjustment nut rotatably coupled to the outer housing;
the adjustment nut having a region of female threads therein; and
the nozzle having a region of male threads thereon such that as the adjustment nut is rotated relative to the nozzle, the nozzle inlet repositions longitudinally within the region radially bounded by the conic end wall.
11. The water play feature of
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This application claims priority benefit of U.S. Provisional Application Ser. No. 62/046,305, filed Sep. 5, 2014, incorporated herein by reference.
This relates to water play structures typically installed in municipalities or waterparks that allow participants to interact with water devices.
Disclosed herein is a water play feature comprising in one example: a water supply source; at least one laminar flow water jet having a nozzle configured to provide a laminar flow water stream for interaction in a water park; and a valve positioned between the water supply source and the laminar flow water jet.
The water play feature may be arranged wherein the laminar flow is turned on and off to interact with participants.
The water play feature may be arranged wherein the laminar flow device is rotated in a horizontal plane to interact with participants.
The water play feature may be arranged wherein the laminar flow device is moved to interact with participants.
The water play feature may comprise a plurality of nozzles forming laminar flow water streams, each nozzle fluidly coupled to a turbulence removing filter portion of the laminar flow water jet.
The water play feature of claim 5, wherein valves are provided on each nozzle forming the laminar flow streams, and these nozzles can turn on and off on an individual basis.
The water play feature may further comprise a lighting device configured to project lighting in the laminar stream.
The water play feature may be arranged wherein the lighting device is configured to project colored lighting is in the laminar stream.
The water play feature may further comprise: a preliminary turbulence filter having: a radially outward outer filter chamber fluidly coupled to the water source via an outer inlet; a radially inward inner filter chamber fluidly coupled to the water source via an inner inlet; wherein the flow of water entering the radially outward outer filter chamber is controlled independent upon the flow of water entering the radially inward inner filter chamber; a laminar flow generator coupled to outlet ends of the radially outward outer filter chamber and radially inward inner filter chamber; and at least one nozzle coupled to the laminar flow generator.
The water play feature may further comprise: a preliminary turbulence filter having an inlet coupled to a water source; a laminar flow generator coupled to the preliminary turbulence filter; wherein the laminar flow generator has a conic end wall at an outlet end thereof. At least one nozzle is coupled to the laminar flow generator and the nozzle having an inlet extending longitudinally into the region radially bounded by the conic end wall; and wherein the nozzle inlet is longitudinally positionable.
The water play feature may further comprise: an adjustment nut rotatably coupled to the laminar flow generator; the adjustment nut having a region of female threads therein; the nozzle having a region of male threads thereon such that as the adjustment nut is rotated relative to the nozzle, the nozzle inlet repositions longitudinally within the region radially bounded by the conic end wall.
The water play feature of may be arranged wherein the nozzle has an inner surface tapered outward from the nozzle inlet.
Disclosed herein are several examples of a laminar jet system 20 for a water play structure 22.
Streamlined or laminar flow of water is a flow of water molecules in a column where the molecules passing through the same point in space have the same velocity as laterally adjacent molecules. Laminar flow is different from turbulent flow in which laterally adjacent water molecules flow in a random manner. A laminar flow water jet is a device that is configured to produce a laminar flow of water. A laminar flow water jet reduces or removes water turbulence prior to jetting of a water column in order to make the jetted water column less turbulent than a standard (turbulent) spray nozzle and produce a laminar water column.
Laminar flow water columns are precisely defined laminar (turbulence-free) jets of rapidly moving water that look motionless when properly formed, these laminar water columns look like glass rods bent into parabolas in the regions of laminar flow where the entire cross section of the water column is moving at the same speed without air pockets and turbulence.
A laminar flow jet consists of a turbulence decreasing chamber commonly in the shape of a cylinder supplied with water from a water source and the following components:
Preliminary turbulence remover: In one example this preliminary turbulence remover can be open cell foam or similar structure contained within a housing generally in cylindrical form just downstream of an inlet to the turbulence decreasing chamber. The structure of the open cell foam removes some turbulence.
Laminar flow generator: The water may then be passed from the preliminary turbulence remover through a laminar flow generator having a large number of (generally cylindrical) cylindrical hollow tubes or straws, with each straw producing an approximately laminar column at the downstream end of the straw. These approximately laminar columns combine together to form a single wider water column at an exit terminal.
Laminar nozzle—The laminar nozzle is often designed in V-shape, which forms the jetted water to a laminar water column. This laminar jet then exits through a fine outlet end of the nozzle.
In one operation example, as previously described, a flow of water is passed through filters and lengths of tubing in order to create a laminar flow. The laminar flow may then be ejected through a nozzle into a water park for interaction by and with the participants. The nozzle may be moved mechanically or manually by a participant to change the flow/destination/target. The flow can be stopped and restarted to create different water effects, some of which will be described by way of examples below.
Shown in the example of
Looking to
In use in a water play structure 22 it may be desired to mount the laminar flow jet 24 onto a gimbal (two-axis pivot) or other movable mount to allow a participant to direct the laminar flow 50 to alternate targets 48.
In addition, a valve 52 having an actuator 54 may be provided between the water source 26 and the laminar flow jet 24. The valve 52 and actuator 54 may alternatively be positioned on the nozzle 44. The valve 52 and actuator 54 may alternatively be positioned at alternate points between the water source 26 and nozzle 44 provided that the turbulence potentially generated by the valve 52 is taken into account.
Looking to
By independently controlling flow through the nozzles 44 of the example shown in
Returning to
Generally, it is desired to have the laminar flow portion 50 near the top of the parabolic arc so as to maximize the aesthetic appeal and focus attention away from the pre-laminar flow portion 80 and post laminar flow portion 84. To accomplish correct positioning of the laminar flow portion 50 the relative diameter and length of the outer cylinder 38, nozzle 44, and straws 34 may be manipulated. In addition, the longitudinal length of and diameter of the open region 40 between the straws 34 and the nozzle 44 may be maximized to properly position the laminar flow portion 50 in a desired application.
Looking to
The preliminary turbulence filter 30 of this example also comprising an inner inlet 88 in fluid communication with the inner cylinder 86 so as to preliminarily filter turbulence of water provided to a radially inward portion of the straws 34. In this way, the radial flow of water entering the nozzle 44 may be controlled so as to adjust the velocity of the outer surface 76 of the water column relative to the inner core 78. This allows a user to control the relative position of laminar flow portion 50 in the parabolic stream 46. This inner and outer filter configuration in combination with the valve 52 also allows a user to control the relative position of the sheer point 82 on the parabolic stream 46. Thus, a user is able to for example produce a parabolic stream 46 with a sheer point 82 directly above target such as another participant. If properly adjusted, this configuration when properly controlled will result in shearing of the laminar flow 50 above the target, resulting in a somewhat cascade of water thereupon.
In any of the preceding examples, a lighting device 90 such as a light emitting diode (LED), laser, or other light source may be utilized in line with the nozzle 44 so as to project a stream of light down the parabolic stream 46. In such an example, the parabolic stream 46 will act in a similar manner to an optical fiber whereupon a significant portion of the light contacting the outer surface 76 of the parabolic stream 46 will be reflected back into the core 78. This will cause the parabolic stream 46 to appear to fluoresce.
The Example shown in
The transfer tube 98 of one example is tapered internally 106 such that the only point of contact to the laminar jet is the nozzle inlet 92. In one example this angle of taper is between 1 and 5 degrees.
In one example the opening in the end of the nozzle 44 maybe bigger than 0.250″. A finger guard 108 may be incorporated to prevent children and other participants from getting stuck/injured in this opening. Thus, it will be desired to have the finger guard longer than a participant's finger, 3″ for example.
Several machined steps of different diameters for a series of shoulders may alternatively be used.
The adjustment nut 96 may be rotated by hand, by a crank on the side with gearing, or by a servo with a timing belt or gears. Also a valve to control flow into the laminar flow jet 24 can be installed to affect range.
The two most critical things to laminar flow is the speed/direction of water at the nozzle inlet 92, and a cleanly machined, tapered to knife edge nozzle inlet. Any change to a nozzle's orifice that allows even the slightest turbulence to leak back into the stream at a different direction severely impedes performance of the parabolic stream 46.
While the present invention is illustrated by description of several embodiments and while the illustrative embodiments are described in detail, it is not the intention of the applicants to restrict or in any way limit the scope of the appended claims to such detail. Additional advantages and modifications within the scope of the appended claims will readily appear to those sufficed in the art. The invention in its broader aspects is therefore not limited to the specific details, representative apparatus and methods, and illustrative examples shown and described. Accordingly, departures may be made from such details without departing from the spirit or scope of applicants' general concept.
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